The ecomechanics of gecko adhesion: natural surface topography, evolution, and biomimetics.
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Thomas Speck | Timothy E Higham | Amber Wright | Peter H Niewiarowski | T. Speck | T. Higham | A. Russell | P. Niewiarowski | Amber N. Wright | Anthony P Russell
[1] C. Gans. MOMENTARILY EXCESSIVE CONSTRUCTION AS THE BASIS FOR PROTOADAPTATION , 1979, Evolution; international journal of organic evolution.
[2] W. Federle,et al. Insect adhesion on rough surfaces: analysis of adhesive contact of smooth and hairy pads on transparent microstructured substrates , 2014, Journal of The Royal Society Interface.
[3] Bharat Bhushan,et al. Diversity of structure, morphology and wetting of plant surfaces , 2008 .
[4] A. Loveridge. Revision of the African lizards of the family Gekkondiae , 1947 .
[5] T. Higham,et al. Non-uniform evolutionary response of gecko eye size to changes in diel activity patterns , 2018, Biology Letters.
[6] S. Minton. A contribution to the herpetology of West Pakistan. Bulletin of the AMNH ; v. 134, article 2 , 2016 .
[7] Daniel R. King,et al. Creating Gecko‐Like Adhesives for “Real World” Surfaces , 2014, Advanced materials.
[8] A. Russell,et al. Between a rock and a soft place: microtopography of the locomotor substrate and the morphology of the setal fields of Namibian day geckos (Gekkota: Gekkonidae: Rhoptropus) , 2014 .
[9] Thomas Speck,et al. Process Sequences In Biomimetic Research , 2008 .
[10] R. Pearson,et al. Applications of ecological niche modeling for species delimitation: a review and empirical evaluation using day geckos (Phelsuma) from Madagascar. , 2007, Systematic biology.
[11] Alyssa Y Stark,et al. Sticking to the story: outstanding challenges in gecko-inspired adhesives , 2016, Journal of Experimental Biology.
[12] Peter Uetz,et al. The global distribution of tetrapods reveals a need for targeted reptile conservation , 2017, Nature Ecology & Evolution.
[13] Ralph Spolenak,et al. Adhesion design maps for fibrillar adhesives: the effect of shape. , 2009, Acta biomaterialia.
[14] T. Higham,et al. The evolution of digit form in Gonatodes (Gekkota: Sphaerodactylidae) and its bearing on the transition from frictional to adhesive contact in gekkotans , 2015, Journal of morphology.
[15] Shi Xiaojun,et al. Evaluation of three-dimensional surface roughness parameters based on digital image processing , 2009 .
[16] Jonathan B. Puthoff,et al. Gecko Adhesion as a Model System for Integrative Biology, Interdisciplinary Science, and Bioinspired Engineering , 2014 .
[17] Robert N. Fisher,et al. A comparative analysis of clinging ability among pad‐bearing lizards , 1996 .
[18] Timothy E Higham,et al. Posture, speed, and habitat structure: three-dimensional hindlimb kinematics of two species of padless geckos. , 2011, Zoology.
[19] Eduard Arzt,et al. Hierarchical Gecko‐Like Adhesives , 2009 .
[20] T. Higham. Bolting , bouldering , and burrowing : functional morphology and biomechanics of pedal specialisations in desert-dwelling lizards , 2015 .
[21] T. Higham,et al. Attachment beyond the adhesive system: the contribution of claws in gecko clinging and locomotion. , 2019, Integrative and comparative biology.
[22] T. Higham,et al. On the origin of frictional adhesion in geckos: small morphological changes lead to a major biomechanical transition in the genus Gonatodes , 2016 .
[23] L. Vitt,et al. Population genetic structure and species delimitation of a widespread, Neotropical dwarf gecko. , 2019, Molecular phylogenetics and evolution.
[24] A. Russell,et al. Limb and digit orientation during vertical clinging in Bibron's gecko, Chondrodactylus bibronii (A. Smith, 1846) and its bearing on the adhesive capabilities of geckos , 2016 .
[25] C. Micheneau,et al. New record of day geckos feeding on orchid nectar in Reunion Island: can lizards pollinate orchid species? , 2014 .
[26] B. Persson,et al. Biological adhesion for locomotion: basic principles , 2007 .
[27] Kellar Autumn,et al. Properties, Principles, and Parameters of the Gecko Adhesive System , 2006 .
[28] A. Bauer,et al. Pedal specialisations in dune-dwelling geckos , 1991 .
[29] Anthony P. Russell,et al. Insights from studies of gecko-inspired adhesion and their impact on our understanding of the evolution of the gekkotan adhesive system , 2007 .
[30] J. Olesen,et al. Lizards as pollinators and seed dispersers: an island phenomenon , 2003 .
[31] E. Gorb,et al. Attachment ability of the southern green stink bug Nezara viridula (Heteroptera: Pentatomidae) , 2017, Journal of Comparative Physiology A.
[32] Johann Georg Wagler. Natürliches System der Amphibien , 1830 .
[33] Danny McCarroll,et al. ROCK SURFACE ROUGHNESS AS AN INDICATOR OF DEGREE OF ROCK SURFACE WEATHERING , 1996 .
[34] A. Bauer,et al. Into the light: diurnality has evolved multiple times in geckos , 2015 .
[35] John C. Murphy. Amphibians and Reptiles of Trinidad and Tobago , 1997 .
[36] U. Hiller. Untersuchungen zum Feinbau und zur Funktion der Haftborsten von Reptilien , 1968, Zeitschrift für Morphologie der Tiere.
[37] David Speck,et al. Biomimetic bio-inspired biomorph sustainable? An attempt to classify and clarify biology-derived technical developments , 2017, Bioinspiration & biomimetics.
[38] J. Anderson. A Report on the Gecko Teratolepis Fasciata (Blyth, 1853) , 1964 .
[39] S. Gorb,et al. WHEN LESS IS MORE: EXPERIMENTAL EVIDENCE FOR TENACITY ENHANCEMENT BY DIVISION OF CONTACT AREA , 2004 .
[40] A. Bauer. Gecko Adhesion in Space and Time: A Phylogenetic Perspective on the Scansorial Success Story. , 2019, Integrative and comparative biology.
[41] H. Cogger. Reptiles & Amphibians of Australia , 1992 .
[42] T. Higham,et al. Divergence in locomotor performance, ecology, and morphology between two sympatric sister species of desert-dwelling gecko , 2010 .
[43] A. Russell,et al. Surface Characteristics of Locomotor Substrata and Their Relationship to Gekkonid Adhesion: A Case Study of Rhoptropus cf biporosus , 2009 .
[44] B. Bhushan. Modern Tribology Handbook, Two Volume Set , 2000 .
[45] R. Full,et al. Adhesive force of a single gecko foot-hair , 2000, Nature.
[46] Timothy E. Higham,et al. Subdigital adhesive pad morphology varies in relation to structural habitat use in the Namib Day Gecko , 2015 .
[47] John Stouby Persson,et al. On the Use of Silicon Rubber Replica for Surface Topography Studies , 2018, Tribology Letters.
[48] E. Decaestecker,et al. Analysing eco‐evolutionary dynamics—The challenging complexity of the real world , 2019, Functional Ecology.
[49] L. Harmon,et al. Competition and community structure in diurnal arboreal geckos (genus Phelsuma) in the indian Ocean , 2007 .
[50] P Aerts,et al. Spatio-temporal gait characteristics of level and vertical locomotion in a ground-dwelling and a climbing gecko. , 2001, The Journal of experimental biology.
[51] K. Autumn,et al. Evidence for self-cleaning in gecko setae. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[52] B. N. J. Perssona. On the mechanism of adhesion in biological systems , 2003 .
[53] A. Bellairs,et al. Morphology and biology of reptiles , 1978 .
[54] T. Speck,et al. Straightforward and precise approach to replicate complex hierarchical structures from plant surfaces onto soft matter polymer , 2018, Royal Society Open Science.
[55] P. Maderson. Keratinized Epidermal Derivatives as an Aid to Climbing in Gekkonid Lizards , 1964, Nature.
[56] M. García-Antón,et al. Structural study of two quartzite varieties from the Utrillas facies formation (Olmos de Atapuerca, Burgos, Spain): From a petrographic characterisation to a functional analysis design , 2017 .
[57] Aleksandra V. Birn-Jeffery,et al. Geckos significantly alter foot orientation to facilitate adhesion during downhill locomotion , 2014, Biology Letters.
[58] Carl Gans,et al. Biology of the Reptilia , 1969 .
[59] Bharat Bhushan,et al. Plant Surfaces: Structures and Functions for Biomimetic Innovations , 2017, Nano-Micro Letters.
[60] Thomas Speck,et al. Plant surfaces with cuticular folds and their replicas: influence of microstructuring and surface chemistry on the attachment of a leaf beetle. , 2013, Acta biomaterialia.
[61] Markus Riederer,et al. Biology of the plant cuticle , 2006 .
[62] Kevin Shiuan,et al. Gecko toe and lamellar shear adhesion on macroscopic, engineered rough surfaces , 2014, Journal of Experimental Biology.
[63] A. Russell,et al. Real-world challenges to, and capabilities of, the gekkotan adhesive system: contrasting the rough and the smooth , 2007 .
[64] A. Bauer,et al. Paraphalangeal elements of gekkonid lizards: A comparative survey , 1988, Journal of morphology.
[65] Timothy E Higham,et al. A new angle on clinging in geckos: incline, not substrate, triggers the deployment of the adhesive system , 2009, Proceedings of the Royal Society B: Biological Sciences.
[66] L. Pastewka,et al. Combining TEM, AFM, and Profilometry for Quantitative Topography Characterization Across All Scales. , 2018, ACS applied materials & interfaces.
[67] S. Gorb,et al. From micro to nano contacts in biological attachment devices , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[68] C. Jones,et al. Positive Indirect Interactions between Neighboring Plant Species via a Lizard Pollinator , 2007, The American Naturalist.
[69] A. Russell,et al. Configuration of the setal fields of Rhoptropus (Gekkota: Gekkonidae): functional, evolutionary, ecological and phylogenetic implications of observed pattern , 2009, Journal of anatomy.
[70] Thomas Speck,et al. Replicating the complexity of natural surfaces: technique validation and applications for biomimetics, ecology and evolution , 2018, Philosophical Transactions of the Royal Society A.
[71] T. Higham,et al. Passively stuck: death does not affect gecko adhesion strength , 2014, Biology Letters.
[72] Jonas O. Wolff,et al. Surface roughness effects on attachment ability of the spider Philodromus dispar (Araneae, Philodromidae) , 2012, Journal of Experimental Biology.
[73] S. Furrer,et al. First experiences with free-ranging giant day geckos (Phelsuma madagascariensis grandis, Gray 1870) in the masoala rainforest exhibit in Zurich Zoo, Switzerland , 2006 .
[74] Stanislav N. Gorb,et al. The effect of surface roughness on the adhesion of elastic plates with application to biological systems , 2003 .
[75] Kimberly L. Turner,et al. Stick–slip friction of gecko-mimetic flaps on smooth and rough surfaces , 2015, Journal of The Royal Society Interface.
[76] H. Wehrden,et al. NICHE SEGREGATION IN MICROHABITAT USE OF THREE SYMPATRIC CYRTODACTYLUS IN THE PHONG NHA-KE BANG NATIONAL PARK , CENTRAL VIETNAM , 2012 .
[77] Bo N. J. Persson,et al. On the mechanism of adhesion in biological systems , 2003 .
[78] K. Niklas,et al. Leaping lizards landing on leaves: escape-induced jumps in the rainforest canopy challenge the adhesive limits of geckos , 2017, Journal of The Royal Society Interface.
[79] R. Full,et al. Evidence for van der Waals adhesion in gecko setae , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[80] A. Russell,et al. Descriptive and functional anatomy of the digital vascular system of the tokay, Gekko gecko , 1981, Journal of morphology.
[81] A. Herrel,et al. Effect of competition on habitat utilization in two temperate climate gecko species , 2012, Ecological Research.
[83] S. B. E. Din,et al. A guide to the reptiles and amphibians of Egypt , 2006 .
[84] Ronald S. Fearing,et al. Fabrication of gecko foot-hair like nano structures and adhesion to random rough surfaces , 2003, 2003 Third IEEE Conference on Nanotechnology, 2003. IEEE-NANO 2003..
[85] A. Russell,et al. Left in the dust: differential effectiveness of the two alternative adhesive pad configurations in geckos (Reptilia: Gekkota) , 2017 .
[86] Zhenhai Xia,et al. Dynamic self-cleaning in gecko setae via digital hyperextension , 2012, Journal of The Royal Society Interface.
[87] Timothy E Higham,et al. Adaptive simplification and the evolution of gecko locomotion: Morphological and biomechanical consequences of losing adhesion , 2014, Proceedings of the National Academy of Sciences.
[88] Bharat Bhushan,et al. Multifunctional surface structures of plants: An inspiration for biomimetics , 2009 .
[89] Bieke Vanhooydonck,et al. Effects of substrate structure on speed and acceleration capacity in climbing geckos , 2005 .
[90] S. Harris,et al. The need for enemy-free space: The impact of an invasive gecko on island endemics , 2005 .
[91] S. Brandl,et al. The meaning of the term ‘function’ in ecology: A coral reef perspective , 2018, Functional Ecology.
[92] Till Junge,et al. Quantitative characterization of surface topography using spectral analysis , 2016 .
[93] A. Goudie. Physical geology , 2021, Nature.
[94] T. Speck,et al. Impact of cell shape in hierarchically structured plant surfaces on the attachment of male Colorado potato beetles (Leptinotarsa decemlineata) , 2012, Beilstein journal of nanotechnology.
[95] A. Russell. Parallelism and Integrated Design in the Foot Structure of Gekkonine and Diplodactyline Geckos , 1979 .
[96] T. Higham,et al. Arboreal Day Geckos (Phelsuma madagascariensis) Differentially Modulate Fore- and Hind Limb Kinematics in Response to Changes in Habitat Structure , 2016, PloS one.
[97] D. Bell,et al. Ecology and co‐existence of two endemic day gecko (Phelsuma) species in Seychelles native palm forest , 2011 .
[98] Beni Charan Mahendra. Contributions to the bionomics, anatomy, reproduction and development of the indian house-gecko,Hemidactylus flaviviridis Rüppel , 1941, Proceedings / Indian Academy of Sciences.
[99] T. Higham,et al. Geckos decouple fore- and hind limb kinematics in response to changes in incline , 2016, Frontiers in Zoology.
[100] T. Ávila-Pires. Lizards of Brazilian Amazonia (Reptilia:Squamata) , 1995 .
[101] A Technique for Enclosing Anolis Lizard Populations under Field Conditions , 1983 .
[102] Huajian Gao,et al. Effects of contact shape on the scaling of biological attachments , 2005, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[103] R. A. Burton,et al. Principles of Tribology , 1977 .
[104] A. Bauer. Phylogenetic Systematics and Biogeography of the Carphodactylini (Reptilia: Gekkonidae) , 1990 .
[105] B. Gruber,et al. Movement patterns and habitat selection of the giant day gecko (Phelsuma madagascariensis grandis) in the Masoala rainforest exhibit, Zurich Zoo , 2009 .
[106] Thomas Speck,et al. Plant surfaces with cuticular folds are slippery for beetles , 2012, Journal of The Royal Society Interface.
[107] Bebni Charan Mahendra,et al. Contributions to the bionomics, anatomy, reproduction and development of the Indian house-gecko,Hemidactylus flaviviridis RÜPpel. Part I , 1936, Proceedings / Indian Academy of Sciences.
[108] Bharat Bhushan,et al. Surface Roughness Analysis and Measurement Techniques , 2000 .
[109] A. Loveridge,et al. Revision of the African Lizards of the Family Gekkonidae. , 1950 .